FILTER FOR A FLUID CIRCUIT, METHOD FOR FILLING A FILTER
The deionizer addresses the challenges of complex maintenance and inefficient conductivity regulation by ensuring sufficient fluid residence time through its unique cartridge design, resulting in effective ion exchange and low conductivity levels in fluid circuits.
Patent Information
- Application Number
- FR2023007881
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-07-21
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2043-07-21
AI Technical Summary
Existing deionizers for fluid circuits, particularly in fuel cell systems, face challenges such as complex maintenance operations, significant pressure drop, and difficulty in controlling the residence time of fluid in contact with the ion exchange resin, leading to inefficient conductivity regulation.
A deionizer design featuring a fluid connection base and a cartridge with a tubular body and a cover, where the central well has only second orifices at its upper section, forcing the fluid to pass through the ion exchange resin over its entire height before exiting, ensuring sufficient residence time and efficient conductivity regulation.
The deionizer ensures a sufficient residence time of the fluid, allowing for effective ion exchange and maintaining a low conductivity level in the fluid, while also simplifying maintenance and adapting to varying fluid circuit dimensions.
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Abstract
Description
Title of the invention: FILTER FOR A FLUID CIRCUIT, METHOD FOR FILLING A FILTER Technical field of the invention
[0001] The invention relates to the technical field of filters, in particular ionic filters or deionizers. The invention also relates to fluid circuits equipped with such filters.
[0002] A deionizer is a particular type of filter intended to regulate the conductivity level of a fluid. This conductivity level is regulated by controlling the level of ions in the fluid. The deionizer can therefore also be called an ion filter. The nature of the fluid to be filtered is not limiting within the scope of the invention. However, as will be seen in more detail in the remainder of this description, the fluid is typically a coolant circulating in a fuel cell temperature regulation circuit.
[0003] The invention also relates to the technical field of methods for filling a filter, for example a deionizer. Technical background
[0004] A fuel cell is intended to convert the energy resulting from an oxidation-reduction reaction into electrical energy to, for example, power a vehicle engine. It is in the form of a stack comprising a cathode and an anode separated from the cathode by an electrolyte, the fuel being reduced by oxidation on the cathode. Fuel cell systems generally comprise a stack of fuel cells in which each fuel cell is crossed by a cooling fluid. The term "temperature control circuit" is used to designate the fluid loop and the elements of the fuel cell system which are crossed by the cooling fluid and / or which participate in the cooling of the fuel cells.
[0005] Fuel cell systems, particularly hydrogen fuel cells, are very widespread in the automotive and transport sectors, where more and more electric vehicles are powered by such systems. The deionizer ensures that a low level of fluid conductivity is maintained in the temperature control circuit. In this respect, the deionizer therefore comprises a granular bed based on an ion exchange resin.
[0006] Existing deionizers typically comprise a reservoir having an internal cavity having an inlet port and an outlet port through which fluid enters and exits the internal cavity respectively. The ion exchange resin occupies a portion of the volume of the internal cavity and is located on the path of the fluid, which allows it to regulate the level of conductivity of said fluid. Conventionally, deionizers have a tubular shape having, at each of their ends, means of connection to the circuit. The maintenance operations which must be carried out on these deionizers, for example to change the ion exchange resin, are complex and long, not to mention the difficulty linked to the size of these deionizers. In addition, since the deionizer causes a significant pressure drop, it is necessary to create a line dedicated to the deionizer in the fluid circuit. In addition, the problem of regulating the conductivity of the fluid also arises in the deionizers of the prior art.Although permanent recirculation allows the entire fluid to be treated, many architectures have been proposed to better control the distribution of the fluid in the deionizer and thus ensure sufficient exchanges between the fluid and the ion exchange resin. However, most existing solutions are not entirely satisfactory.
[0007] Document US 10,569,266 A1 discloses a deionizer 5 for a cooling circuit 2 of a fuel cell. The deionizer 5 comprises a base 8 intended to be connected to the cooling circuit 2. In this regard, the base 8 comprises a conduit 9 for the circulation of the coolant and a portion 10 extending perpendicular to the conduit. The conduit 9 is configured to be mounted on a bypass conduit 6 of the circuit. The deionizer 5 also comprises a cartridge 15, in the form of a bell, configured to receive an ion exchange resin 14. The cartridge 15 is adapted to be removably fixed on the perpendicular portion 10 of the base. In such a configuration, it is possible to unscrew the cartridge from the perpendicular portion 10 of the base when a maintenance operation must be carried out on the deionizer, which significantly simplifies the maintenance operation.
[0008] Furthermore, the cartridge 15 comprises a cylindrical body 15a and a central well 16 in fluid communication with an outlet orifice 12 of the coolant circulation conduit. The cylindrical body 15a and the central well 16 delimit the volume intended to receive the ion exchange resin 14. The coolant enters the cartridge 15 via a mesh disc 31a located at the bottom of the cartridge and gradually fills the cartridge 15. It then reaches the interior of the central well via the upper end of the central well and exits through the outlet orifice 12 and leaves the cartridge by flowing through the central well 16 to the outlet orifice 12.
[0009] However, the coolant is also able to exit the cartridge 15 via a bypass path 32 without passing through the ion exchange resin 14. This system is very complex and does not allow precisely control the residence time of the fluid in the cylindrical body 15a, in particular in contact with the ion exchange resin. Indeed, this residence time depends not only on the fluid flow rate in the cartridge but also on the number and the passage section of the holes in the mesh disc 31a, on the length of the central well 16, in particular the distance between the holes in the mesh disc 31a and the upper end of the central well, on the passage section of the bypass path 32. Thus, if another application and / or a change of scale are envisaged, a complete resizing of the system must be carried out.
[0010] Document KR 1261950 B1 discloses a deionizer for a cooling circuit of a fuel cell. The deionizer comprises a body 10, a cover 20 having an outlet duct for the cooling water and a base 14 having an inlet duct for the cooling water. The body 10 is fixed to the cover 20 by fixing means 11, 23, 30, and fixed to the base 14 by coupling means 167. It contains a removable cartridge 16 coupled to the base 14 by fixing means 1651. The cartridge 16 comprises a cylindrical wall 161 comprising a mesh and a central well 163, installed inside the cylindrical wall 161, through which the cooling water coming from the inlet conduit 12 enters. The ion exchange resin is intended to occupy the volume between the cylindrical wall 161 and the central well 163.The central well 163 also includes a mesh formed of a plurality of openings extending along the central well 163. The diameter of the openings increases as one moves away from the area through which the cooling water is injected into the cartridge. The benefit of such an arrangement is not explained.
[0011] This device does not allow precise control of the residence time of the fluid in the deionizer, in particular in contact with the ion exchange resin. Indeed, the openings made at the central well extend over the entire length of the central well, so that when the fluid passes through the openings closest to the lower end of the well, it does not remain in contact long enough with the ion exchange resin and leaves the deionizer almost directly. In addition, this affects the fluid flow rate at the most distant openings, so that if another application and / or a change of scale is envisaged, a complete resizing of the openings of the central well must be carried out to maintain an appropriate distribution of the fluid in the deionizer.
[0012] If, as described so far, an appropriate regulation of the conductivity level of the fluids can pose difficulties when designing deionizers, in particular when manufacturers seek to implement these devices on circuits of variable dimensions, the filling of these deionizers can also raise numerous problems. That being said, the problems related to the Filling does not only concern deionizers but also all filters.
[0013] In this regard, the prior art has also been concerned with the filling of cartridge filters. A cartridge filter is a filter comprising a fluid connection base capable of being connected to the fluid circuit and a cartridge capable of being removably fixed to the base. The aforementioned documents describe examples of cartridge filters, in particular cartridge deionizers. This type of filter must be distinguished from fixed filters whose external frame is generally made of a single piece and in which it is therefore not possible to separate a cartridge from a base. In cartridge filters, the cartridge being removable, it is possible to fill the cartridge without having to remove the base from the fluid circuit.
[0014] Document JP-A-2021137771 discloses a method for filling a cartridge 5 of a deionizer type filter. The cartridge 5 is adapted to be removably fixed in a housing 4 provided for this purpose. The cartridge 5 comprises a central well 6 with which it forms an integral part. It further comprises two mesh elements 7a and 8a which make it possible to retain the ion exchange resin when the latter is in the cartridge. The method for filling the cartridge is carried out by means of a filling apparatus. The method comprises a step during which the cartridge 5, devoid of the mesh element 8a, is arranged on a support 30 so that its top is turned towards the ground. Then, a masking element 13 is arranged on one end of the central well facing the filling device so as to close said end, then the cartridge 5 is filled with ion exchange resin by means of a tap 35.Finally, the cartridge 5 is closed by placing the mesh element 8a on supports 9 provided for this purpose.
[0015] This filling method is very complex. Indeed, the cartridge can only be filled from the bottom of the cartridge, that is to say, from the edge formed by the mesh element 8a and a cover 8 when they are present. Indeed, to carry out the filling, the mesh element 8a and the cover 8 of the cartridge must be removed in order to leave the interior of the cartridge free of access. Concomitantly, it is necessary to ensure that the inlet orifice of the central well 6 is not accessible and for this the central well must be covered with a masking element 13. After filling the cartridge 5, the latter is closed with the mesh element 8a and the cover 8, which requires very great precision because it is necessary to adjust the mesh element 8a and the cover 8 around the central well.
[0016] The invention aims to overcome at least some of the aforementioned problems. Summary of the invention
[0017] According to a first aspect, the invention proposes for this purpose a deionizer for a circuit of fluid, the deionizer comprising:
[0018] - a fluid connection base capable of being connected to a fluid circuit, this base comprising a fluid inlet port, a fluid outlet port, and a fixing interface, and
[0019] - a cartridge comprising a body and a cover, the body having a shape generally tubular along a longitudinal axis, and comprising a first closed longitudinal end and a second longitudinal end which is configured to be fixed to the fixing interface of the base, the body comprising an internal storage cavity capable of storing an ion exchange resin, the cover being intended to be fixed to the second longitudinal end of the body and comprising a platform connected to a central well,
[0020] the platform extending transversely with respect to said longitudinal axis and closing the second end of the body and said internal cavity, this platform comprising first orifices covered by a first screen or comprising this first screen, the first orifices being configured to allow a fluid to pass from said internal cavity towards the outlet port, and the first screen being configured to retain the resin and prevent it from leaving the internal cavity, and
[0021] the central well extending inside the body and having a generally tubular shape along the longitudinal axis, the central well comprising a first closed longitudinal end located on the side of the first longitudinal end of the body, and a second longitudinal end which is connected to the platform and which is fluidically connected to the inlet port, the central well comprising two adjacent sections between its first and second ends, an upper section located on the side of the first end and comprising second orifices covered by a second screen or comprising this second screen, the second orifices being configured to allow the fluid to pass from the central well into the internal cavity, and the second screen being configured to retain the resin and prevent it from leaving the internal cavity, and a lower section which is located on the side of the second end and which is devoid of orifices.
[0022] The deionizer according to the invention solves at least some of the problems of the prior art. Indeed, unlike the deionizers of the prior art, the deionizer according to the invention makes it possible to ensure that the residence time of the fluid in the deionizer is sufficient to obtain a low level of conductivity in the fluid. In this respect, in the deionizer of the invention, there are second orifices only at the upper section of the central well, i.e. the section located on the side of the first end. The lower section of the central well located on the side of the second end, i.e. the end of the central well which is fluidically connected to the inlet port, is devoid of orifices. Thus, when the fluid enters the deionizer, it cannot directly enter the internal cavity and exit through the first orifices having passed through the ion exchange resin only over a tiny part of its height. On the contrary, the fluid is forced to reach the second orifices of the upper section, located on the side of the first end, to pass from the central well into the internal cavity. Incidentally, the fluid is forced to pass through the ion exchange resin over almost its entire height before exiting the deionizer through the outlet port via the first orifices. A residence time of the fluid in the internal cavity is guaranteed in comparison with the residence time obtained in the deionizers of the prior art which makes it possible to ensure sufficient exchanges with the ion exchange resin and, subsequently, to maintain a low level of conductivity in the fluid.
[0023] Furthermore, unlike the deionizers of the prior art, maintaining the conductivity level of the fluid at a low level can be easily adapted according to the dimensions of the deionizer according to the invention and / or the volume of fluid to be treated, this on the basis of a limited number of geometric parameters of the deionizer. Indeed, the residence time of the fluid in the internal cavity is little dependent on the flow rate of the fluid and little dependent on the characteristics of the platform, in particular the dimensions and / or the shape of the first orifices of the platform. On the contrary, in the deionizers of the prior art, these parameters have a great impact on the residence time of the fluid in the internal cavity.Indeed, as there are second orifices close to the outlet port of these deionizers, this has the effect of making the residence time of the fluid exiting through these orifices very dependent on the parameters of the fluid entering the deionizer and very dependent on the geometric parameters at the outlet of the deionizer, in particular the outlet orifices of the internal cavity.
[0024] According to different characteristics of this deionizer according to this first aspect of the invention which may be taken together or separately: • the second orifices have increasing diameters along the longitudinal axis, the second orifices having the largest diameters being proximal to the first end while the second orifices having the smallest diameters being distal to the first end; • the second orifices have dimensions, along the longitudinal axis, not differing by more than 10% from the dimensions, along a transverse axis, of the central well and the inlet port; • the second orifices have centimetric dimensions along the longitudinal axis; • the second orifices have centimetric dimensions, • the second orifices are distributed angularly on a circumference of the central well, said second orifices have a substantially el- shape lipsoidal; the longitudinal dimensions of the lower section are at least equal to the longitudinal dimensions of the upper section; the first orifices are distributed uniformly around the central well, said first orifices having substantially the same diameter or the same transverse dimension; the central well includes between four and ten first orifices; said first orifices are of substantially circular shape; the platform comprises an upper face, of circular shape, delimited by a peripheral periphery extending around the longitudinal axis, this peripheral periphery having a cylindrical shape matching an inner periphery of the second longitudinal end of the cartridge, said first orifices being formed in the upper face; the deionizer further comprises an exhaust cavity formed by the platform and the base, said exhaust cavity extending around the inlet port; the inlet port comprises a channel for connecting the inlet port to the central well, the connecting channel being substantially straight and opening at the second longitudinal end of the central well; the base includes a multi-way valve for connecting the deionizer to the fluid circuit; the body comprises a dome, located at its first end, this dome being configured to receive the first end of the central well; the body further includes an air bleed hole and a plug configured to be secured to the air bleed hole, the air bleed hole and the plug being located at a top of the dome; the second end of the body comprises first fixing means, and the fixing interface comprises second fixing means complementary to the first fixing means and capable of cooperating with said first fixing means; the platform comprises first means for attaching to the cartridge, and the second end of the body comprises second means for attaching to the platform, the second end of the body comprises openings for loading the ion exchange resin, the cover being configured to move between a filling position, in which the hooking means are free and the openings are open so as to give access to the internal cavity for filling, and a use position, in which the second means hooks are engaged with the first hooking means and the openings are closed by the platform, by translation of the longitudinal axis.
[0025] Still according to the first aspect, the invention further relates to a fluid circuit, in particular for a vehicle, comprising a stack of fuel cells, a heat exchanger and a deionizer as previously described.
[0026] Still according to the first aspect, the invention also relates to a method of filling a deionizer, the method comprising the following steps in this order:
[0027] - providing a cartridge and a cover of a deionizer as previously described, - put the lid in a filling position,
[0028] - filling the internal cavity with ion exchange resin via the or openings, and
[0029] - close the cartridge using the cover.
[0030] Advantageously, closing the cartridge causes a settling or even compression of the resin in the internal cavity.
[0031] According to a second aspect, the invention relates to a filter for a fluid circuit, the filter comprising a cartridge having a body and a cover having a platform, the body having a generally tubular shape along a longitudinal axis, and comprising a first closed longitudinal end and a second longitudinal end which is configured to be fixed to the cover, the body comprising an internal storage cavity capable of storing a filter resin, the second longitudinal end of the body comprising lateral openings for loading the filter resin, the cover being configured to move in translation along the longitudinal axis from a filling position, in which the lateral openings are open so as to allow the filling of the internal cavity, to a use position, in which the openings are closed by the platform.
[0032] The filter according to the second aspect of the invention not only makes it possible to easily fill the internal cavity but also to subsequently mount the cover 20 by simply pressing it on the user. On the contrary, in the filters according to the prior art, the loading / filling of the internal cavity can only be done from the bottom of the internal cavity, as has been seen by way of example in document JP-A-2021137771. The filter is therefore particularly simple to use. The position of the openings, namely laterally at the second longitudinal end of the body, is therefore particularly suitable so that the filling can be carried out simply and without having to carry out complex and numerous manipulations to mount or remount the cover.
[0033] According to different characteristics of this filter according to this second aspect of the invention which can be taken together or separately: • the platform is connected to a central well having a generally tubular shape along the longitudinal axis, this central well extending inside the body; • said filter is a deionizer; • first notches extend from a first annular rim on an internal surface of the body. • the cartridge includes two diametrically opposed openings.
[0034] The filter according to the invention may comprise one or more of the characteristics listed above concerning the deionizer.
[0035] Still according to the second aspect, the invention relates to a method of filling a filter, the method comprising the following steps in this order:
[0036] - provide a filter as previously described,
[0037] - put the cover in the filling position,
[0038] - fill the internal cavity with the filter resin through the openings lateral, and
[0039] - close the cartridge using the cover.
[0040] According to different characteristics of this filling method according to the second aspect of the invention which may be taken together or separately: • the platform comprises first means for attaching to the cartridge and the second end of the body comprises second means for attaching to the platform, the first and second attachment means being free when the cover is in the filling position, the second attachment means being engaged with the first attachment means when the cover is in the use position. • one of the elements chosen from among the first attachment means and the second attachment means comprises protrusions, and the other of these elements comprises notches, the protrusions being configured to cooperate by elastic snap-fastening with the notches to ensure the fixing of the elements together. • first protrusions are respectively separated from the second protrusions by first spaces, the attachment means comprising tabs capable of being inserted into the spaces so as to longitudinally lock the cover relative to the body when the cover is in the use position. • the cover comprises at least one pattern for marking the filling position and the use position, this pattern being arranged so that, in the filling position, the pattern is fully visible, and in the use position, the pattern is partially visible; • the platform comprises a second annular rim projecting from an external surface of the platform so that in the filling position, the second annular rim is in abutment for the first annular rim. Brief description of the figures
[0041] Other objects, characteristics and advantages of the invention will appear more clearly in the following description, made with reference to the appended figures, in which:
[0042] - Figures 1a and 1b illustrate fluid circuits respectively according to a first ([Fig. 1a]) and a second (Fig. 1b) embodiment of the invention,
[0043] - Figures 2a and 2b are perspective views of a deionizer according to a first embodiment of the invention in assembled position ([Fig.2a]) and in disassembled position ([Fig.2b]),
[0044] - Figures 3a and 3b are perspective views of a deionizer according to a second embodiment of the invention in assembled position ([Fig.3a]) and in disassembled position ([Fig.3b]),
[0045] - Figures 4a and 4b are longitudinal sectional views of a deionizer according to a embodiment of the invention,
[0046] - [Fig.4c] is a top view of a cover for a deionizer as illustrated in Figures 4a and 4b;
[0047] - Figures 5a to 5c are respectively perspective and sectional views of a deionizer cartridge according to the first embodiment at the different stages of a cartridge filling process,
[0048] - [Fig.6] illustrates the different stages of implementing a rem process pleating of the cartridge of a deionizer according to one embodiment of the invention. Detailed description of the invention
[0049] In the present description, the terms "upper", "lower" are not limiting and are simply used to better understand the invention with reference to the illustrated figures. The use of the term "lower" simply indicates that the element considered is closer to a lower edge of the filter compared to an element with which the term "upper" is associated, the lower edge being that closest to the ports of the filter in the illustrated figures.
[0050] We will now describe the invention with reference to the attached figures.
[0051] Figures 1a and 1b illustrate fluid circuits 50 according to one embodiment of the invention. In the illustrated embodiments, the fluid circuit 50 is a cooling circuit for vehicles, for example automobiles, powered by means of a stack of fuel cells. In this regard, the illustrated fluid circuits 50 basically comprise a stack 51 of fuel cells, a heat exchanger 54 and a filter 1'. The arrows shown schematically on the fluid circuit 50 designate the direction of circulation of the fluid F within the fluid circuit 50.
[0052] The operation of the fuel cell stack 51 was presented in the introduction and is not repeated here. In addition, as already mentioned, any other type of fluid circuit 50 could be used. The heat exchanger 54 has the role of carrying out heat exchanges with the cooling fluid F, after the latter has passed through the stack 51, and of distributing the heat absorbed by said cooling fluid F in the rest of the vehicle essentially for the purposes of heating and / or air conditioning and / or dehumidification of the air in the passenger compartment. When it passes through the stack 51, the cooling fluid F becomes charged with ions and it is necessary to regulate its conductivity to avoid premature degradation of the fluid circuit 50. It is the filter 1' which is, according to a first aspect of the invention, a deionizer which ensures this control of the conductivity.
[0053] In the embodiment illustrated in [Fig.1a], the elements of the fluid circuit 50 are mounted in parallel. The fluid circuit comprises, in addition to the elements already mentioned, a valve 52 and a conventional T-connector 53. The fluid circuit 50 comprises a first branch comprising the heat exchanger 54 and a second branch, parallel to the first branch, comprising the deionizer 1. The T-connector 53 makes it possible to distribute the cooling fluid F leaving the stack 51 and the deionizer to the exchanger 54 while the valve 52 makes it possible to distribute the cooling fluid F leaving the exchanger 54 to the stack 51 and the deionizer 1. Thus, the process by which cooling is carried out in the circuit is independent of the process by which the conductivity of the cooling fluid F is regulated.Under these conditions, if an intervention must be implemented on the deionizer 1, the cooling loop of the cooling fluid F is not affected. Similarly, if an intervention must be carried out on the exchanger 54, the control loop of the conductivity of the cooling fluid F is not affected.
[0054] However, this fluid circuit 50 ([Fig. 1a]) is more complex to manufacture and requires a greater number of elements. Thus, in the embodiment illustrated in [Fig. 1b], the elements of the fluid circuit 50 are connected in series. There are the stack 52, the exchanger 54 and the deionizer 1. In this fluid circuit 50, the deionizer 1 is equipped with a multi-way valve 6 which allows it to manage the distribution of the cooling fluid F in the circuit itself. We will return to this in the description relating to FIGS. 3a and 3b. The advantage of such a configuration is that it allows the circuit and its manufacture to be simplified, which is made possible because there is no longer an isolated valve 52, parallel branches, and T-connector 53.
[0055] Such fluid circuits 50 are used to better understand the invention, however, the fluid circuit 50 according to the invention is not limited to a cooling circuit 50 for motor vehicles, and even less a cooling circuit dissement 50 comprising a stack of fuel cells. Indeed, the fluid circuit 50 according to the invention finds application in all fields requiring filtration by means of a filter 1' according to the invention. With regard to the deionizer 1 which will be more particularly described below and which constitutes a first aspect of the invention, it should be noted that it can, by way of example, be used in any fluid circuit 50 requiring regulation of the conductivity of a fluid. The fluid circuit 50 can therefore be any water deionization circuit, whether this water is intended for laboratory use, industrial use or mass consumption.
[0056] Figures 2a and 2b illustrate a deionizer 1 according to a first embodiment of the present invention suitable for use in a fluid circuit 50 intended to regulate the conductivity of a fluid, such as for example those seen in Figs, la and 1b. The deionizer 1 is a cartridge deionizer, i.e. a deionizer comprising a fluid connection base 2 suitable for connection to the fluid circuit 50 and a cartridge 8 suitable for being removably fixed on the base 2. When an intervention has to be carried out on the deionizer 1, the cartridge 8 can be removed from the base 2 without having to dismantle the entire deionizer 1, i.e. the deionizer with the base 2. Incidentally, the base 2 can be permanently installed in the fluid circuit 50.
[0057] In this respect, the base 2 has a generally tubular shape along a longitudinal axis X. It comprises a fluid inlet port 3 and a fluid outlet port 4 allowing the fluid F to, respectively, enter the deionizer 1 and exit the deionizer 1. It should be noted that the inlet port 3 and the outlet port 4 could quite easily be located on the cartridge 8 instead of being located at the base 2. However, in this case, there would no longer be any point in using a cartridge 8 separate from a base 2 and which can be detached from this base, for the reasons already mentioned. In this case, it would no longer be a cartridge deionizer 1 but a fixed deionizer 1.
[0058] Let us return to the fluid circuit 50 exemplified in [Fig.1a]. The deionizer 1 could be implemented therein by fluidically connecting the inlet port 3 to the valve 52 and by fluidically connecting the outlet port 4 to the T-connector 53. If the deionizer 1 includes an integrated multi-way valve 6, as illustrated in FIGS. 4a and 4b, it can be installed in the fluid circuit 50 by connecting the inlet port 3 to the exchanger 54 and by connecting the outlet port to the stack 51. We will return to this later. That being said, as already mentioned, the deionizer 1 can be installed on any other conductivity control circuit. The base 2 further comprises a fixing interface 5 to which the cartridge 8 can be fixed. This fixing interface 5, which is located near an upper edge of the base, will be better described in the following.
[0059] Figures 3a and 3b illustrate a deionizer 1 according to a second embodiment of the present invention suitable for use in a fluid circuit 50 intended to regulate the conductivity of a fluid. Unlike the deionizer 1 of the first embodiment, this deionizer 1 comprises a multi-way valve 6 making it possible in particular to manage the distribution of the fluid F through the cartridge 8 while guaranteeing continuity of the circulation of the fluid within the fluid circuit 50. In addition, during maintenance operations for the replacement of the cartridge 8, the multi-way valve 6 allows the supply of fluid F to the cartridge 8 to be closed, thus avoiding complete purging of the fluid circuit 50. Incidentally, the integration of the multi-way valve 6 into the base makes it possible to eliminate the pipes, connections and elements of the second parallel branch. In the exemplary embodiment illustrated in [Fig.[la], these include valve 52, the pipes of the second parallel branch, and the T-connector 53.
[0060] In the embodiment illustrated in Figures 3a and 3b, the multi-way valve 6 is integrated into the base 2 of the deionizer. More specifically, the multi-way valve 6 is fixed to a wall of the base 2. It comprises a drive mechanism (not visible), and an actuator 6a which makes it possible to control the drive mechanism in order to open or close, if necessary, the access path to the deionizer 1. In this regard, the drive mechanism is connected to a valve (not visible) which is able to move to selectively open and close an access path connecting the inlet port 3 and the outlet port 4. Preferably, the multi-way valve 6, the inlet port 3 and the outlet port 4 are therefore arranged in a T-shaped configuration, which makes it possible to simplify the opening and closing of the access path. We will return to this later in order to better describe the arrangement of these elements in relation to the internal elements of deionizer 1.
[0061] Unless otherwise indicated, the entire description which follows applies indifferently to deionizers, for example according to the two embodiments previously described.
[0062] The cartridge 8 comprises a body 10 and a cover 20 (visible in Figs. 4a and 4b). The body 10 has a generally tubular shape along the longitudinal axis X. The body 10 comprises a first closed longitudinal end 11 and a second longitudinal end 12 which is configured to be fixed to the fixing interface 5 of the base. Since the first longitudinal end 11 is closed, the fluid F which enters the deionizer 1 can only exit by taking a path leading to the outlet port 4. The second longitudinal end 12 can advantageously comprise first fixing means 14 capable of cooperating with second fixing means 5a complementary to the fixing interface 5 in order to mount the cartridge 8 on the base 2 in a removable manner.
[0063] In the embodiment illustrated in the figures, the first fixing means 14 consist of a thread, for example of helical shape, formed on an external surface of the cartridge 8 while the second means 5a consist of a complementary thread formed on an internal surface of the base 2. This makes it possible to mount and dismount the cartridge 8 from the base 2 by, respectively, screwing and unscrewing. The mounting and dismounting of the cartridge are therefore greatly facilitated. The deionizer 1 according to the invention is not limited to such fixing means and other fixing means making it possible to mount the cartridge 8 in a removable manner on the base 2 can be envisaged by those skilled in the art without prejudice to the invention.
[0064] In this regard, as can be better seen in Figures 2b and 3b, the deionizer 1 may also comprise a sealing gasket 40 for ensuring its sealing at the level of the fixing interface 5. The second longitudinal end 12 comprises an annular stop 12b near which the sealing gasket 40 is positioned. The fixing interface comprises, for its part, an upper edge 5b brought into sealed support against the annular stop 12b when the cartridge 8 is mounted on the base 2, said support being sealed by the gasket 40.
[0065] Furthermore, as seen in [Fig.2a] to 3b, the first longitudinal end 11 may advantageously comprise a profile 19 of polyhedral shape which is configured to be grippable by a suitable tool. The dimensions and shape of the profile 19 may be adapted to standard tools or, alternatively, if the dimensions and shape of the profile 19 are not adapted to those of standard tools, the tool may be adapted for such use.
[0066] The body 10 further comprises an internal storage cavity 16 capable of storing an ion exchange resin A. The ion exchange resin A is an active material with which the fluid F can carry out ion exchanges making it possible to regulate its conductivity. The ion exchange resin A is advantageously in the form of beads or grains, with a diameter generally between 0.2 mm and 2 mm. Preferably, the resin A is made of polypropylene random copolymer (PPR), or polyphenylene sulfide (PPS). These materials make it possible to carry out sufficient ion exchanges without themselves releasing a quantity of ions which would degrade or cancel the deionizing effect. However, PPS is preferred to PPR because it has better chemical stability. That being said, it is less flexible, i.e. less deformable, than PPR and more expensive.
[0067] Figures 4a and 4b, which are longitudinal sectional views of longitudinal axis X of a deionizer 1 according to the first embodiment, allow a better view of the internal cavity 16 and the cover 20. However, let us specify that the cartridge 8 and the cover 20 as described below in relation to this first embodiment are identical in the second embodiment. Indeed, only the base 2 and the arrangement of its elements relative to the cartridge 8 and the cover 20 may have differences between the first and second embodiments.
[0068] As illustrated, the internal cavity 16 occupies a large part of the interior volume of the cartridge 8, which means that a large volume of ion exchange resin A can be stored in the cartridge. In Figures 4a and 4b, the deionizer 1 is illustrated in the assembled position, that is to say that the cover 20 is fixed to the second longitudinal end 12 of the body and that the cartridge 8 is mounted on the base 2. The cover 20 comprises a central well 25 and a platform 21 connected to this central well 25 by a joint 20a. In the following, the platform 21 and the central well 25 are described in more detail. First of all, let us emphasize that, in the illustrated embodiments, the deionizer 1 has centimetric dimensions. That being said, it may, depending on the use to be made of it, have larger dimensions.
[0069] In the assembled position, the platform 21 extends transversely with respect to the longitudinal axis X and closes the second end 12 of the body and said internal cavity 16. Indeed, the internal cavity 16 is closed on the one hand by the first longitudinal end 11 (which is always closed), and on the other hand by the platform 21 which obstructs the second longitudinal end 12 (closed when the deionizer 1 is in the assembled position) and which therefore forms a physical limit of the internal cavity. In the illustrated embodiment, the platform 21 has a substantially cylindrical shape. The platform 21 comprises an upper face 21a delimited by a peripheral periphery 21b extending around the longitudinal axis X. As can be better seen in the top view illustrated in FIG. 3c, the upper face 21a has a circular shape and is centered around the longitudinal axis X.The peripheral circumference 21b has a cylindrical shape matching an inner circumference of the second longitudinal end 12 of the cartridge. In this regard, the dimensions of the platform 21 can be chosen appropriately to allow a precise adjustment of the cover 20 in the cartridge 8 once said cover 20 is mounted in the cartridge. Thus, when the cover 20 is mounted in the cartridge 8, there is little, if any, play between the cover and the cartridge.
[0070] The platform 21 comprises first orifices 23 configured to allow the fluid F to pass from said internal cavity 16 to the outlet port 4. These first orifices 23 are better visible in [Fig.4c]. In the exemplary embodiment illustrated in [Fig.4c], the first orifices 23 are distributed uniformly around the central well 25, and have substantially the same diameter or the same transverse dimension, which promotes a homogeneous distribution of the flows of fluid F flowing from the internal cavity 16 towards the outlet port 4. The first orifices 23 are advantageously formed in the upper face 21a of the platform. Although in [Fig.4c] the first orifices 23 are six in number, at least four first orifices 23 and, preferably, up to ten first orifices 23 may be provided on the platform. This represents a good compromise between obtaining a sufficient flow rate and simplifying the manufacturing process of the platform 21. It is then appropriate to adapt the diameter of said first orifices 23 according to the number of these first orifices. Preferably, the higher this number, the smaller the diameter of the first orifices 23. In this regard, although the first orifices 23 have a circular shape in the illustrated embodiments, they may have any other shape as long as they allow the fluid F to pass from the internal cavity 16 to the outlet port.
[0071] As also visible in [Fig.4c], the first orifices 23 are covered by a first sieve 23a or comprise the first sieve 23a. The first sieve 23a is configured to retain the ion exchange resin A and prevent it from leaving the internal cavity 16, and in particular from entering an evacuation cavity 24 formed by the platform 21 and the base 2. Indeed, in practice, the first orifices 23 have dimensions significantly larger than those of the balls composing the ion exchange resin A, that is to say that each orifice has dimensions of at least one order of magnitude larger than those of a ball of the resin A. Without the first sieve 23a, the balls would therefore be evacuated towards the outlet port 4 under the effect of gravity and the fluid F passing through the deionizer 1.In this regard and preferably, the first sieve 23a comprises openings whose maximum dimensions are strictly less than the dimensions of the balls making up the ion exchange resin A. Preferably, the first sieve can be made of the same material as the rest of the cover 20, which makes it easier to recycle.
[0072] At this stage, it should be emphasized that the previously mentioned discharge cavity 24 does not only serve as a communication channel for the fluid F leaving the internal cavity 16. Indeed, the discharge cavity 24 extends around the inlet port 3, and more precisely around a channel 7 of the inlet port. This channel 7 occupies a substantially central position in the discharge cavity 24 and will be described in more detail in the remainder of this description. It should also be noted that the discharge cavity 24 is delimited longitudinally by the upper face 21a of the platform and by a lower edge (not referenced) of the base 2. It is also delimited laterally by the peripheral edge 21b of the platform.
[0073] The central well 25 has a generally tubular shape along the longitudinal axis X. It extends inside the body 10 when the cover 20 is placed on the cartridge 8. In the embodiment illustrated in the figures, it extends from a central zone of the upper face 21a of the platform ([Fig.4c]) so that when the deionizer 1 is in the assembled position ([Fig.4a] and 4b), the central well 25 occupies a central position inside the internal cavity 16. Thus, the dynamics of distribution of the fluid F in the internal cavity 16 depends very little on the geometry of the internal cavity 16 itself since the flow conditions are uniform around the central well 25.
[0074] Furthermore, the central well 25 comprises a first closed longitudinal end 28 which is located on the side of the first longitudinal end 11 of the body. In practice, the first longitudinal end 28 of the central well is closed by the first longitudinal end 11 of the body. Indeed, according to a preferred embodiment, the first longitudinal end 11 of the body comprises a dome 13 configured to receive the first end 28 of the central well. The dome 13 comprises a top and, in addition, an air purge hole 13a and a plug 13b located at its top. The air purge hole 13a serves to purge the internal cavity 16, that is to say serves to evacuate the excess air included in the internal cavity 16 when the cartridge is filled. The plug 13b is configured to be attached to the air bleed hole 13a so that this air bleed hole 13a is always closed unless a purge is to be carried out at the time of filling the cartridge 8.The plug 13b is only separated from the air purge hole 13a when a purge of the internal cavity 16 is carried out. Thus, when the deionizer 1 is in the assembled position, as illustrated in the figures, the first longitudinal end 11 of the body is always closed. Concomitantly, as the first longitudinal end 28 of the central well is received in the dome 13, it is also closed by the first longitudinal end 11 of the body. It should be noted that the dome 13 is not mandatory and that the first longitudinal end 11 could quite easily be closed by a simple wall following the contours of the first longitudinal end 28 of the central well.
[0075] The central well 25 further comprises a second longitudinal end 29 which is connected to the platform 21 and which is fluidically connected to the inlet port 3. In the embodiments illustrated in the figures, the second longitudinal end 29 is connected to the platform 21 via the joint 20a connecting the platform 21 and the central well 25. As already mentioned previously and visible in the figures, the inlet port 3 comprises the connecting channel 7. This connecting channel 7 extends to the central well 25. More precisely, it opens directly at the second longitudinal end 29 of the central well when the deionizer 1 is in the assembled position, which creates a path for the fluid F arriving via the inlet port 3. In the illustrated embodiment, the connecting channel 7 is substantially straight. However, it may have any other suitable shape depending on the position of the inlet port 3.This connection channel 7 can for example have an L shape for a deionizer 1 according to the second embodiment (Figs. 3a and . 3b).
[0076] In this regard, as in the embodiment illustrated in figs. 4a and 4b, the central well 25 and the connecting channel 7 are aligned along the longitudinal axis X, that is to say that the central well 25 extends in the continuity of the inlet port 3, parallel to the connecting channel 7 and in the extension of said connecting channel 7, when the fluid F moves in the inlet port 3 and in the central well, it does not undergo any slowing down apart from that possibly caused by its own weight. Preferably, the joint 20a follows the contours of one end of the connecting channel proximal to the second longitudinal end 29 of the central well when the deionizer 1 is in the assembled position. This makes it possible to stabilize the connection between the central well 25 and the inlet port 3.
[0077] In the deionizer 1 according to the second embodiment, this is not the case since the inlet port 3 is not aligned with the central well 25. The inlet port 3 is in fact aligned with the outlet port 4 and, possibly, the valve of the multi-way valve 6. The connection channel 7 has an L shape, which is likely to slightly slow down the fluid F. It is therefore appropriate to take this into account when the fluid flow rate is fixed.
[0078] According to a first aspect of the invention, the central well 25 comprises two adjacent sections 25a, 25b (visible in [Fig.5b]) between its first 28 and second 29 ends. According to the first aspect of the invention, an upper section 25a is located side by side with the first longitudinal end 28 and comprises second orifices 27a, 27b, 27c covered by a second screen or comprising this second screen. The second orifices 27a, 27b, 27c are configured to allow the fluid F to pass from the central well 25 into the internal cavity 16, and the second screen is configured to retain the ion exchange resin A and prevent it from leaving the internal cavity 16 to reach the interior of the central well 25. Still according to the first aspect of the invention, a lower section 25b is located on the side of the second end 29 and is devoid of orifices. With more specific reference to [Fig.4b], when the fluid F enters the deionizer 1, it successively passes through the fluid inlet port 3, the lower section 25b, the upper section 25a, the second orifices 27a, 27b, 27c, the ion exchange resin A, the first orifices 23, the platform 21 - in particular the evacuation cavity 24 formed by the platform 21 and the base 2 - and the outlet port 4.
[0079] In the deionizer 1 according to the first aspect of the invention, the central well 25 only comprises second orifices 27a, 27b, 27c at its upper section 25a, namely the section located on the side of the first longitudinal end 11 of the body. Thus, when the fluid F enters the deionizer 1, it cannot directly enter the internal cavity 16. It is in fact forced to travel through the entire lower section 25b before reaching the second orifices 27a, 27b, 27c. It can therefore only pass through a tiny part of the ion exchange resin A and is, on the contrary, forced to reach the second orifices 27a, 27b, 27c of the upper section 25a to pass from the central well 25 into the internal cavity 16. The fluid F is therefore forced to pass through the ion exchange resin A over almost its entire height before exiting the deionizer 1 through the outlet port 4 via the first orifices 23. The residence time of the fluid F in the internal cavity 16 is therefore significantly extended compared to the deionizers of the prior art, which makes it possible to ensure sufficient exchanges with the ion exchange resin A so that the level of conductivity in the fluid is low.
[0080] Furthermore, unlike the deionizers of the prior art, maintaining the conductivity level of the fluid at a low level can be easily adapted with the deionizer 1 according to the invention according to the volume of fluid to be treated, this on the basis of a limited number of geometric parameters of the deionizer 1. Indeed, the residence time of the fluid F in the internal cavity 16 is little dependent on the flow rate of the fluid and little, if any, dependent on the characteristics of the platform 21, in particular the dimensions and / or the shape of the first orifices 23 of the platform. On the contrary, in the deionizers of the prior art, these parameters greatly impact the residence time of the fluid in the internal cavity 16.Indeed, as there are second orifices close to the outlet port of these deionizers, this has the effect of making the residence time of the fluid exiting through these orifices very dependent on the parameters of the fluid entering the deionizer and very dependent on the geometric parameters at the outlet of the deionizer, in particular the outlet orifices of the internal cavity.
[0081] As previously mentioned, the upper section 25a comprises the second orifices 27a, 27b, 27c. In the embodiment illustrated in the figures, the second orifices 27a, 27b, 27c are distributed both longitudinally, i.e. along the longitudinal axis X, and angularly over the entire circumference of the central well 25. There is therefore a plurality of second orifices, respectively 27a, 27b and 27c, along the longitudinal axis X and, at a given height, there is also a plurality of second orifices over the entire circumference of the central well 25 forming annular rows of second orifices. Thus, the upper section 25a comprises a plurality of second orifices 27a distal to the first longitudinal end 28 which are located at the same height. Likewise, the upper section 25a comprises a plurality of second orifices 27c proximal to the first longitudinal end 28 which are located at the same height.The same also applies to all the second intermediate orifices 27b located between the second distal orifices 27a and the second proximal orifices 27c of the first longitudinal end 28 of the central well.
[0082] In this regard, if, as illustrated in the figures, the upper section 25a does not comprise than one annular row of second intermediate orifices 27b - and therefore three annular rows of second orifices 27a, 27b, 27c, the upper section 25a could comprise more annular rows of second intermediate orifices 27b, 27b' (not shown), 27b” (not shown), etc. if the dimensions of the deionizer 1 were to be enlarged.
[0083] As also illustrated in Figures 4a and 4b, the second orifices 27a, 27b, 27c have a substantially ellipsoidal shape. However, the second orifices 27a, 27b, 27c could have any other desired shape. In the context of the invention, it is only important that the second orifices are capable of allowing the fluid F to pass from the central well 25 into the internal cavity 16. The same applies to the dimensions of said second orifices 27a, 27b, 27c. That being said, it is advantageous for the second orifices 27a, 27b, 27c to have dimensions, along the longitudinal axis X, not differing by more than 10% from the dimensions, along a transverse axis Y, of the central well 25 and the inlet port 3.In other words, it is advantageous that the respective diameters of the longitudinal sections of the second orifices 27a, 27b, 27c, of the cross section of the central well 25 and of the cross section of the inlet port 3 do not differ by more than 10%. Indeed, this avoids creating geometric singularities and generating sudden changes in speeds and behaviors of the fluid F inside the deionizer 1. Preferably, the respective diameters of the longitudinal sections of the second orifices 27a, 27b, 27c, of the cross section of the central well 25 and of the cross section of the inlet port 3 are of centimetric dimensions.
[0084] In this regard, according to a particularly advantageous embodiment of the deionizer 1, the second orifices 27a, 27b, 27c have diameters db d2, d3 increasing along the longitudinal axis X, the second orifices 27c proximal to the first longitudinal end 28 having the largest diameters d3 while the second orifices 27a distal to the first longitudinal end 28 have the smallest diameters di. In other words, the diameter of the second orifices 27a, 27b, 27c increases along the longitudinal axis X in the direction of movement of the fluid F. In other words, the further the second orifices 27a, 27b, 27c are from the second longitudinal end 29, the larger their diameter.Such a configuration makes it possible to obtain a higher fluid flow rate in an area of the internal cavity 16 which is furthest from the first orifices 23 and a lower fluid flow rate in an area of the internal cavity 16 which is closer to the first orifices 23 than the area crossed by a higher fluid flow rate. Thus, the fluid F which enters the internal cavity 16 through the second distal orifices 27a of the first longitudinal end 28 - closer to the inlet port 3 - has a sufficiently low speed when it enters the internal cavity 16 to have time to carry out exchanges with the resin A. ion exchanger. Concomitantly, the fluid F which enters the internal cavity 16 through the second proximal orifices 27c of the first longitudinal end 28 - further from the inlet port - has a sufficiently high speed to reach said second proximal orifices 27c and to carry out sufficient exchanges with the ion exchange resin A.
[0085] As already mentioned, the second orifices 27a, 27b, 27c are covered by a second sieve (not shown). The second sieve is configured to retain the ion exchange resin A and prevent it from leaving the internal cavity 16, and in particular from entering the central well 25. Like the first orifices 23 and in practice, the second orifices 27a, 27b, 27c have dimensions that are significantly larger than those of the balls making up the ion exchange resin A, that is to say that each second orifice 27a, 27b, 27c has dimensions that are at least one order of magnitude larger than those of the balls of the resin A. Without the second sieve, the balls could reach the central well 25 and considerably reduce the flow rate of the fluid F when the latter passes through the deionizer 1.In this regard and preferably, the second sieve comprises openings whose maximum dimensions are strictly less than the dimensions of the balls making up the ion exchange resin A. Preferably, the second sieve can be made of the same material as the rest of the cover 20, which makes it easier to recycle.
[0086] According to an advantageous implementation, the longitudinal dimensions of the lower section 25b are at least equal to the longitudinal dimensions of the upper section 25a. Thus, even if the upper section 25a and the lower section 25b have similar dimensions, this means that the fluid F is forced to reach half the height of the internal cavity 16 before being able to penetrate into said internal cavity. When, for example, the filling rate of the internal cavity 16 by the ion exchange resin A is greater than 80%, it is even more advantageous for the lower section 25b to have longitudinal dimensions greater by at least 30%, preferably by at least 40%, compared to the longitudinal dimensions of the upper section 25a. Since the lower section 25b is longer than the upper section 25a, the fluid F is forced to travel a greater distance in the central well 25 before being able to penetrate into the internal cavity 16.Whatever the configuration chosen, it is appropriate to take into account, where appropriate, the influence of the first longitudinal end 11 of the body on the first longitudinal end 28 of the central well, which, as a reminder, preferentially follows its contours.
[0087] Referring now to Figures 5a to 5c, we will describe the means of assembling the cartridge 8 and the cover 20 as well as the different assembly steps. It should be noted that the mounting of the cartridge on the base 2 has previously been described.
[0088] According to an exemplary embodiment illustrated in the figures, the platform 21 comprises in this respect first attachment means 22 capable of cooperating with second complementary means 17 for attachment of the cartridge 8 so as to allow the cover 20 to be fixed in the cartridge 8. Still according to this exemplary embodiment, the first attachment means 22 of the platform consist of protrusions 22a, 22c separated by a first space 22b. The second attachment means 17 of the cartridge consist, for their part, of notches 17a, 17c and a tab 17b. The second attachment means 17 are provided at the second longitudinal end 12 of the body.
[0089] To fix the cover 20 to the cartridge 8, it is appropriate to introduce the cover 20 into the cartridge 8 by making the central well 25 penetrate into the internal cavity 16. When the platform 21 is close to the second longitudinal end 12 of the body, the user must exert slight pressure on the cover 20 so that the first attachment means 22 clip onto the second attachment means 17. During clipping, a first protuberance 22a fits into a first notch 17a, while in parallel a second protuberance 22c fits into a second notch 17c and the tab 17b fits into the first space 22b. The cooperation of such first attachment means 22 with such second attachment means 17 makes it possible to make the fixing of the cover 20 to the cartridge 8 more reliable.
[0090] Furthermore, according to an exemplary embodiment not illustrated, the first attachment means and the second attachment means could be reversed, that is to say that the first attachment means could consist of notches and a tab while the second attachment means could consist of protrusions separated by a first space. Other means for fixing the cover 20 to the cartridge 8 could be envisaged without prejudice to the deionizer 1 according to the first aspect of the present invention.
[0091] At the end of the clipping step, a lower annular rim 21b of the cover rests on an annular rim 12a of the second longitudinal end 12. In addition, the first longitudinal end 28 of the central well rests on the first longitudinal end 11 of the body.
[0092] It should be noted that when the attachment of the cover 20 to the cartridge 8 is not associated with a filling of the cartridge 8 or, at least when the internal cavity 16 is empty, these steps can be implemented without the cartridge 8 being turned over as can be seen in the figures. In other words, it is not necessary to orient the cartridge 8, as illustrated in the figures, if the internal cavity 16 is empty or must be kept empty for a while.
[0093] In this regard, we will now describe the different steps for filling a deionizer 1 as previously described, in particular a cartridge 8 of such a deionizer.
[0094] In this respect and as a preliminary point, it is particularly advantageous for the second longitudinal end 12 of the body to comprise lateral openings 15 for loading the ion exchange resin A. These lateral openings 15 therefore preferably have dimensions suitable for introducing the balls forming the ion exchange resin A. As a reminder, the resin balls generally have dimensions of between 0.2 mm and 2 mm. To facilitate the loading of the balls, it is therefore appropriate for the loading openings 15 to have dimensions at least 3 to 7 times greater than the dimensions of a single ball. It is also advantageous for the platform 21 and the cover 8 to comprise, respectively, the first means 22 for attachment to the cover 8 and the second means 17 for attachment to the platform 21 so as to be able to be fixed.
[0095] During a first step 110, a cartridge 8 and a cover 20 are provided as described above.
[0096] During a second step 120, the cover 20 is placed in a position, called the filling position, in which the second 17 attachment means are free and the lateral openings 15 are open so as to provide access to the internal cavity 16 for filling. The second attachment means 17 are said to be “free” as opposed to a situation in which they are engaged with the first attachment means 22. During this step, it is preferable, initially, to arrange the cartridge 8 vertically so that the first longitudinal end 11 of the body is oriented towards the ground, and therefore is closer to the ground than the other parts of the cartridge. Then, the cover 20 is positioned so that the central well 25 is inside the internal cavity 16, ensuring that the second 17 attachment means are free and the lateral openings 15 are open. This position is better seen in [Fig.5a].This position is natural because the protrusions protrude radially over the annular rim 12a. In this respect, the platform 21 can advantageously be dimensioned so that the annular edge 12a retains the protrusion 22a when no pressure is exerted on the cover 20, that is to say when the cover 20 is simply placed on the cartridge 8.
[0097] In a third step 130, the internal cavity 16 is filled with ion exchange resin A via the lateral openings 15 as illustrated in [Fig.5b]. In this step, it is preferable to maintain the cartridge 8 in a vertical position in which the first longitudinal end 11 of the body is oriented towards the ground. Furthermore, preferably, the quantity of resin A to be loaded is predetermined so that the quantity of resin A is appropriate to allow the control of the conductivity of the fluid F, that the quantity of resin A is appropriate for compact maintenance of the balls, and that the quantity of resin A loaded does not prevent the fixing the cover 20 to the cartridge 8 in the next step.
[0098] In a fourth step, the cartridge 8 is closed by means of the cover 20. In this respect, a simple pressing movement on the cover 20 by translation along the longitudinal axis X allows the cover 20 to cooperate with the cartridge 8. Advantageously, the closing of the cartridge 8 causes a settling or even a compression of the ion exchange resin A in the internal cavity 16. This ensures compact maintenance of the beads of the resin A. During this step, and as already seen previously, the first protuberance 22a fits into the first notch 17a, while in parallel the second protuberance 22c fits into the second notch 17c and the tab 17b fits into the first space 22b.The cover 20 is then in a position, called the use position, in which the second attachment means 17 are engaged with the first attachment means 22 and in which the lateral openings 15 are closed by the platform.
[0099] According to a second aspect, the invention further relates to a filter 1' for a fluid circuit 50. Examples of fluid circuits 50 were described at the beginning of the detailed description and are not repeated here. In the remainder of this description we describe more precisely the filter according to the second aspect of the invention. The filter 1' may be any type of filter well known to those skilled in the art, for example a particle filter (bacteria, contaminants, etc.) for the treatment of water used for aquatic or recreational activities, industrial activities, etc. The filter resin A' may adopt any form known commercially. Preferably, the filter resin A' is in the form of beads with dimensions between 0.2 and 2 mm.
[0100] The filter 1' comprises a cartridge 8 comprising a body 10 and a cover 20.
[0101] The body 10 has a generally tubular shape along a longitudinal axis X. The body 10 comprises a first closed longitudinal end 11 and a second longitudinal end 12 which is configured to be fixed to the cover 20. According to an exemplary embodiment of the filter 1', the filter 1' is a fixed filter. In this case, the body 10 comprises a fluid inlet port 3 and a fluid outlet port 4, said inlet and outlet ports being directly connected to the fluid circuit 50. Alternatively, the filter 1' is a cartridge filter. In this regard, the filter 1' then comprises a base 2 for fluid connection to the fluid circuit, this base 2 comprising the fluid inlet port 3 and the fluid outlet port 4. In this alternative embodiment, the cartridge 8 is configured to be removably fixed to the base 2. In this regard, the base 2 may comprise a fixing interface 5, located near an upper edge of said base, to which the cartridge 8 can be fixed.The description relating to the first aspect of the invention describes in detail the manner in which the cartridge 8 can be fixed to the base 2 by means of such a . 5 fixing interface.
[0102] The body 10 comprises an internal storage cavity 16 capable of storing a filter resin A' in an appropriate quantity to carry out exchanges with the fluid F when it passes through the cartridge 8. The filter resin A' is not limited to a particular type of resin. It is adapted to the use to be made of the filter 1' according to this second aspect of the invention. By way of examples, the filter resin A' may be made of one or more decontaminating, bactericidal, virucidal, etc. materials. According to a particular embodiment, the filter resin A' is an ion exchange resin and is therefore suitable for a filter 1' of the deionizer type.
[0103] The cover 20 is intended to be fixed to the second longitudinal end 12 of the body. In this respect, as we will see below, the cover 20 and the cartridge 8 can advantageously comprise complementary attachment means. The cover 20 comprises a platform 21 which makes it possible to alternately open and close the second longitudinal end 12 of the body and, with it, the internal cavity 16 since the other end, namely the first longitudinal end 11 of the body, is closed. According to a preferred embodiment, the platform 21 extends transversely with respect to the longitudinal axis X. It comprises an upper face 21a delimited by a peripheral periphery 21b extending around the longitudinal axis X. Preferably, the upper face 21a has a circular shape and is centered around the longitudinal axis X.Advantageously, the peripheral circumference 21b has a shape matching an inner circumference of the cartridge, which allows it to be as close as possible to the cartridge 8, or even to be in sealed contact with the cartridge 8. In this respect, it is advantageous for the dimensions of the platform 21 to be chosen appropriately to allow precise adjustment of the cover 20 in the cartridge 8 once this cover 20 is mounted in the cartridge.
[0104] According to a preferred embodiment, the cover 20 also plays a role in the distribution of the fluid F through the filter 1' and the fluid circuit 50. In this regard, the platform 21 may comprise first orifices 23 configured to allow the fluid F to pass from said internal cavity 16 to the outlet port 4. These first orifices 23 are not described in detail and reference is made to the description relating to the first aspect of the invention which presents other possible characteristics of these first orifices 23. Furthermore, still concerning the distribution of the fluid F in the filter 1' and the fluid circuit 50, the platform 21 may be connected to a central well 25 having a generally tubular shape along the longitudinal axis X which extends inside the body 10.The central well 25 can advantageously comprise second orifices 27a, 27b, 27c to allow the fluid F to pass from this central well 25 into the internal cavity 16. These second orifices 27a, 27b, 27c are not described. in detail and reference is made to the description relating to the first aspect of the invention which presents other possible characteristics of these second orifices.
[0105] According to the second aspect of the invention, the second longitudinal end 12 of the body comprises lateral openings 15 for the filtering resin A'. The lateral openings 15 are in fact used to load the filtering resin A' into the internal cavity 16. These lateral openings 15 therefore have appropriate dimensions so that the filtering resin, whatever its shape, can be inserted into the internal cavity 16.
[0106] Still according to this second aspect of the invention, the cover 20 is configured to move in translation along the longitudinal axis X from a filling position, in which the lateral openings 15 are open so as to allow the filling of the internal cavity 16, to a use position, in which the lateral openings 15 are closed by the platform 21 of the cover. Thus, when the cover 20 is in the filling position and the lateral openings 15 are open, the filter resin A' can be loaded into the internal cavity 16 by any suitable means whereas, when the cover 20 is in the use position and the lateral openings 15 are closed by the platform 21, it is impossible to have access to the internal cavity 16 by this means. Moreover, in this use position, in addition to the lateral openings 15, the second longitudinal end 12 of the body is also closed.When the cartridge 8 reaches this position of use, this advantageously causes a settling or even a compression of the filtering resin A' in the internal cavity 16, which ensures that the filtering resin A' is kept compact in the internal cavity.
[0107] The filter 1' according to this second aspect of the invention overcomes many drawbacks of the filters according to the prior art. Indeed, in the filters according to the prior art, the loading / filling of the internal cavity can only be done via the bottom of the internal cavity, this bottom being removable. However, this bottom, similar to a cover, is generally formed of several parts which must first be separated from the filter so that the filter resin can be loaded into the internal cavity. Generally, the dismantling of these parts requires the implementation of tedious operations which can be particularly complex. The reassembly of these parts in the filter can also prove to be tedious and very complex. The filter 1' according to the second aspect of the invention not only makes it possible to easily fill the internal cavity but also to subsequently mount the cover 20 by simply pressing it on the user.The filter 1' is therefore particularly simple to use. The position of the openings 15, namely laterally at the level of the second longitudinal end 12 of the body, is therefore particularly suitable so that filling can be carried out simply and without having to carry out complex and numerous manipulations to mount or remount the cover 20.
[0108] An example of a filter 1' is illustrated in Figures 5a to 5c, which successively show the cover 20 in the filling position (Figs. 5a and 5b) and in the use position ([Fig.5c]). Depending on the configuration of the filter 1', it may be necessary to turn the filter 1' over so that the filter resin A' does not fall during loading or exert too much pressure on the cover 20 during loading. In this regard, the lateral openings 15 are not necessarily located at the second longitudinal end 12 of the body, even if this is more practical if it is desired to facilitate complete filling of the internal cavity 16 with filter resin. According to a particular implementation, the cartridge 8 comprises two diametrically opposed openings 15, which makes it possible both to achieve sufficient fixing of the cover 20 to the cartridge 8 and to make the cover simple to manufacture.
[0109] According to a third aspect, the invention further relates to a method 100 for filling a filter 1' according to the second aspect of the invention. The method 100 according to this third aspect of the invention comprises the following steps in this order:
[0110] 110) providing a filter 1' according to the second aspect of the invention,
[0111] 120) put the cover 20 in the filling position,
[0112] 130) fill the internal cavity 16 with the filter resin A' via the or 15 side openings, and
[0113] 140) close the cartridge 8 using the cover 20.
[0114] The filling method 100 according to the third aspect of the invention makes it possible to overcome many drawbacks of the filling methods known from the prior art. At the end of step 130), since the cover 20 is prepositioned on the cartridge 8, it is possible to fill the interior cavity with the filter resin A' without it being necessary to use any masking element unlike the methods of the prior art, for example those described in document JP-A-2021137771. The implementation of this method with a filter - as previously seen - which comprises a cover 20 leaving the lateral openings 15 open when it is in the filling position and closing said lateral openings 15 when it is in the use position makes it possible to carry out the filling simply and with a very reduced number of manipulations.
[0115] In this regard and according to an exemplary embodiment illustrated in [Fig.5a], the cover 20 comprises at least one pattern 30 for marking the filling position and the use position, this pattern 30 being arranged so that, in the filling position, the pattern is entirely visible, and in the use position, the pattern is partially visible. This allows the user to quickly assess the position of the cover 20 relative to that of the cartridge 8, which can be particularly useful when several fluid circuits 50 need to be serviced. In this case, the pattern indicates “not filled” (“not filled” in It is fully visible in the filling position, while in the use position only the word "filled" is visible. It is therefore possible to quickly identify the status of the cartridge 8, namely filled / not filled.
[0116] Furthermore, in the case where the platform 21 is connected to a central well 25 comprising the second orifices 27a, 27b, 27c, it is advantageous for these second orifices to be covered with a screen which makes it possible to retain the filtering resin A' outside the central well during loading. In addition, it is also advantageous for the first longitudinal end 28 of the central well to be dimensioned so as to already be engaged in the first longitudinal end 11 of the body when the cover 20 is in the position of use. Indeed, this prevents the filtering resin A' from blocking the closure of the cover. No additional masking element is necessary at the second longitudinal end 12 of the body to prevent the resin A' from entering the central well 25, contrary to what had been seen in the prior art.
[0117] According to a particular implementation, the platform 21 comprises first means 22 for attaching to the cartridge 8 and the second end 12 of the body comprises second means 17 for attaching to the platform 21. The first 22 and second 17 attachment means are free when the cover 20 is in the filling position while the second attachment means 17 are engaged with the first attachment means 22 when the cover 20 is in the use position. Thus, during step 140, the cartridge 8 can be closed by the cover by making the second attachment means 17 and the first attachment means 22 cooperate so that the second attachment means 22 are engaged with the first attachment means 17 when the cover 20 reaches the use position.
[0118] Preferably, one of the elements chosen from the first attachment means 22 and the second attachment means 17 comprises protrusions 22a, 22c, and the other of these elements comprises notches 17a, 17c. The second attachment means 17 could therefore be located on the cover 20 while the first attachment means 22 could conversely be located on the cartridge 8, in particular at the second longitudinal end 12 of the body. Regardless of the configuration chosen, the protrusions 22a, 22c are then preferably configured to cooperate by elastic snap-fastening with the notches 17a, 17b to ensure the fixing of the elements together. By inserting into the first notches 17a, the first protrusions 22a make it possible to angularly lock the cover 20 relative to the cartridge 8, which is particularly advantageous when the cover 20 is in the position of use.The same applies when the second protrusions 22c fit into the second notches 17c.
[0119] Furthermore, the first protrusions 22a are respectively separated from the second protrusions 22c by spaces 22b, the attachment means 17 com take tabs 17b capable of being inserted into the spaces 22b so as to longitudinally lock the cover 20 relative to the body 10 when the cover 20 is in the position of use. The cooperation of the tabs 17b with the spaces 22b makes it possible to make the fixing of the cover 20 on the cartridge even more reliable by preventing the cover 20 from making movements along the longitudinal axis X once it is fixed on the cartridge. In other words, the cooperation of the tabs 17b and the spaces 22b achieves longitudinal locking of the cover 20 relative to the cartridge 8.
[0120] Other means for fixing the cover 20 to the cartridge 8 can be envisaged, however the first attachment means 22 and the second attachment means 17 as described above make it possible to make the fixing of the cover 20 to the cartridge 8 more reliable while allowing easy disassembly of the cover 20. Indeed, the cover 20 can be separated from the cartridge 8 by exerting pressure on the second protrusion 22c (pressed into the second notch 17c, eg [Fig.5c]) above a predetermined threshold. The stress thus generated on the cover 20 dislodges the tab 17b from the space 22b and the first protrusion 22a from the first notch 17a.
[0121] According to a particular implementation and as can be seen in the figures, the first notches 17a extend from a first annular rim 12a on an internal surface of the body 10. The fact that the first notches 17a are close to the first annular rim 12a makes it possible to reduce the stresses exerted by the cover 20 on the cartridge 8 when said cover 20 passes from the filling position to the use position.
[0122] According to another particular implementation, the platform 21 comprises a second annular rim 31 projecting from an external surface of the platform so that in the filling position, this second annular rim 31 is in abutment on the first annular rim 12a. Thus, when the cover 20 reaches the position of use, it is retained both by the first 17 and second 22 attachment means but also by the second annular rim 31. The latter is also a means of locking in translation of the cover 20 relative to the cartridge 8. It marks the end-of-travel position of the cover.
[0123] The configurations shown in the cited figures are only possible examples, in no way limiting, of the invention which on the contrary encompasses the design variants within the reach of those skilled in the art.
Claims
Claims
1. Filter (1') for a fluid circuit (50), the filter (1') comprising a cartridge (8) having a body (10) and a cover (20) having a platform (21), the body (10) having a generally tubular shape along a longitudinal axis (X), and comprising a first closed longitudinal end (11) and a second longitudinal end (12) which is configured to be fixed to the cover (20), the body (10) comprising an internal storage cavity (16) capable of storing a filtering resin (A'), the second longitudinal end (12) of the body comprising lateral openings (15) for loading the filtering resin (A'), the cover (20) being configured to move in translation along the longitudinal axis (X) from a filling position, in which the lateral openings (15) are open and allow the filling of the internal cavity (16), to a use position,in which the openings (15) are closed by the platform (21).,
2. Filter (F) according to claim 1, wherein the platform (21) is connected to a central well (25) having a generally tubular shape along the longitudinal axis (X), this central well (25) extending inside the body (10).
3. Filter (F) according to any one of the preceding claims, said filter (F) being a deionizer.
4. A method (100) of filling a filter (F), the method (100) comprising the following steps in this order: (110) providing a filter (F) according to any one of the preceding claims, (120) placing the cover (20) in the filling position, (130) filling the internal cavity (16) with the filter resin (A') via the lateral openings (15), and (140) closing the cartridge (8) by means of the cover (20).
5. Filling method according to claim 4, in which the platform (21) comprises first means (22) for attachment to the cartridge (8) and the second end (12) of the body comprises second means (17) for attachment to the platform (21), the first (22) and second (17) attachment means being free when the cover (20) is in the filling position, the second attachment means (17) being engaged with the first attachment means (22) when the cover (20) is in the use position.
6. Filling method (100) according to claim 5, wherein one of the elements chosen from the first attachment means (22) and the second attachment means (17) comprises protrusions (22a, 22c), and the other of these elements comprises notches (17a, 17c), the protrusions (22a, 22c) being configured to cooperate by elastic snap-fastening with the notches (17a, 17c) to ensure the fixing of the elements together.
7. Filling method (100) according to claim 6, in which first protrusions (22a) are respectively separated from the second protrusions (22c) by first spaces (22b), the hooking means (17) comprising tabs (17b) capable of being inserted into the spaces (22b) so as to longitudinally lock the cover (20) relative to the body (10) when the cover (20) is in the use position.
8. Method (100) of filling according to any one of the preceding claims, in which the cover (20) comprises at least one pattern (30) for marking the filling position and the use position, this pattern (30) being arranged so that, in the filling position, the pattern (30) is entirely visible, and in the use position, the pattern (30) is partially visible.
9. A filling method (100) according to any preceding claim, wherein the platform (21) comprises a second annular rim (31) projecting from an outer surface of the platform such that in the filling position the second annular rim (31) abuts the first annular rim (12a).